Conformational changes in a pore-lining helix coupled to cystic fibrosis transmembrane conductance regulator channel gating

被引:38
作者
Beck, Edward J. [1 ]
Yang, Yu [1 ]
Yaemsiri, Sirin [1 ]
Raghuram, Viswanathan [1 ]
机构
[1] NHLBI, Kidney & Electrolyte Metab Lab, NIH, Bethesda, MD 20892 USA
关键词
CFTR CHLORIDE CHANNEL; ACETYLCHOLINE-RECEPTOR CHANNEL; NUCLEOTIDE-BINDING DOMAIN; ABC TRANSPORTER; P-GLYCOPROTEIN; ANION-BINDING; CL-CHANNELS; CYSTEINE; MECHANISM; SITE;
D O I
10.1074/jbc.M702235200
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Cystic fibrosis transmembrane conductance regulator (CFTR), the protein dysfunctional in cystic fibrosis, is unique among ATP-binding cassette transporters in that it functions as an ion channel. In CFTR, ATP binding opens the channel, and its subsequent hydrolysis causes channel closure. We studied the conformational changes in the pore-lining sixth transmembrane segment upon ATP binding by measuring state-dependent changes in accessibility of substituted cysteines to methanethiosulfonate reagents. Modification rates of three residues (resides 331, 333, and 335) near the extracellular side were 10-1000-fold slower in the open state than in the closed state. Introduction of a charged residue by chemical modification at two of these positions (resides 331 and 333) affected CFTR single-channel gating. In contrast, modifications of pore-lining residues 334 and 338 were not state-dependent. Our results suggest that ATP binding induces a modest conformational change in the sixth transmembrane segment, and this conformational change is coupled to the gating mechanism that regulates ion conduction. These results may establish a structural basis of gating involving the dynamic rearrangement of transmembrane domains necessary for vectorial transport of substrates in ATP-binding cassette transporters.
引用
收藏
页码:4957 / 4966
页数:10
相关论文
共 38 条
[1]   ACETYLCHOLINE-RECEPTOR CHANNEL STRUCTURE PROBED IN CYSTEINE-SUBSTITUTION MUTANTS [J].
AKABAS, MH ;
STAUFFER, DA ;
XU, M ;
KARLIN, A .
SCIENCE, 1992, 258 (5080) :307-310
[2]   Activation of wild type and ΔF508-CFTR by phosphodiesterase inhibitors through cAMP-dependent and -independent mechanisms [J].
Al-Nakkash, L ;
Hwang, TC .
PFLUGERS ARCHIV-EUROPEAN JOURNAL OF PHYSIOLOGY, 1999, 437 (04) :553-561
[3]   The first nucleotide binding domain of cystic fibrosis transmembrane conductance regulator is a site of stable nucleotide interaction, whereas the second is a site of rapid turnover [J].
Aleksandrov, L ;
Aleksandrov, AA ;
Chang, XB ;
Riordan, JR .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (18) :15419-15425
[4]   Identification of cystic fibrosis transmembrane conductance regulator channel-lining residues in and flanking the M6 membrane-spanning segment [J].
Cheung, M ;
Akabas, MH .
BIOPHYSICAL JOURNAL, 1996, 70 (06) :2688-2695
[5]   Rapid kinetic analysis of multichannel records by a simultaneous fit to all dwell-time histograms [J].
Csanády, L .
BIOPHYSICAL JOURNAL, 2000, 78 (02) :785-799
[6]   Thermodynamics of CFTR channel gating:: A spreading conformational change initiates an irreversible gating cycle [J].
Csanady, Laszlo ;
Nairn, Angus C. ;
Gadsby, David C. .
JOURNAL OF GENERAL PHYSIOLOGY, 2006, 128 (05) :523-533
[7]   ATP-binding cassette transporters in bacteria [J].
Davidson, AL ;
Chen, J .
ANNUAL REVIEW OF BIOCHEMISTRY, 2004, 73 :241-268
[8]  
Dawson David C., 1999, Physiological Reviews, V79, pS47
[9]   Structure of a bacterial multidrug ABC transporter [J].
Dawson, Roger J. P. ;
Locher, Kaspar P. .
NATURE, 2006, 443 (7108) :180-185
[10]   Structural basis of energy transduction in the transport cycle of MsbA [J].
Dong, JH ;
Yang, GY ;
Mchaourab, HS .
SCIENCE, 2005, 308 (5724) :1023-1028